• Title/Summary/Keyword: 장면 추출

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A Study of East Scene Change Detection Using Optimized Temporally Sampling from Compressed MPEG Videos. (압축된 MPEG 비디오에서 최적화된 검색간격을 이용한 빠른 장면전환 검출에 관한 연구)

  • Kim, Joong-Heon;Kim, Shin-Hyoung;Park, Doo-Yeong;Jang, Jong-Whan
    • Proceedings of the Korea Information Processing Society Conference
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    • 2001.10a
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    • pp.237-240
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    • 2001
  • 비디오 데이터의 효율적인 저장, 관리를 위해서는 장면전환 검출을 통한 비디오 분할 기술에 대한 연구가 필요하다. 기존의 장면전환 검출 알고리즘은 복호화에 의한 연산량 및 프레임들간의 비교에 의한 연산량이 많고 잡음에 의한 오검출 및 미검출이 발생하게 된다. 본 논문에서는 MPEG 압축 비디오에서 압축 영역에서의 타른 장면전환 검출을 위한 최적의 검색 간격을 유도하였고, 검색간격 내의 B 프레임의 방향성을 직접 추출하여 장면전환검출에 이용하므로 빠르고 정확한 장면전환 검출 알고리즘을 제안한다.

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Scene Change Detection of Composing Color Histogram and X2 Histogram (컬러 히스토그램과 X2 히스토그램을 결합한 장면 전환 검출)

  • Shin, Seong-Yoon;Jang, Dai-Hyun;Shin, Kwang-Seong;Lee, Hyun-Chang;Rhee, Yang-Won
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2011.06a
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    • pp.55-57
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    • 2011
  • 장면 전환 검출은 비디오를 구조화하고 비디오 연산을 수행하는데 필수적인 요소이다. 본 문에서는 기존에 제시된 컬러 히스토그램과 x2 히스토그램을 합성한 새로운 방법의 장면 전환 검출 방법을 제시한다. 특히 이 방법은 비디오 프레임들의 차이값 추출 방법들의 단점을 극복하고 장점을 최대한 활용한 방법이다. 그리고 매우 빠르게 화면이 지나가는 급진적 장면 전환 검출에서 느리게 화면이 진행하는 점진적 장면 전환 검출까지 모두 검출할 수 있다. 실험을 통해서 본 방법이 기존의 방법보다 우수하다는 것을 보여주고 있다.

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Soccer Video Highlight Building Algorithm using Structural Characteristics of Broadcasted Sports Video (스포츠 중계 방송의 구조적 특성을 이용한 축구동영상 하이라이트 생성 알고리즘)

  • 김재홍;낭종호;하명환;정병희;김경수
    • Journal of KIISE:Software and Applications
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    • v.30 no.7_8
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    • pp.727-743
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    • 2003
  • This paper proposes an automatic highlight building algorithm for soccer video by using the structural characteristics of broadcasted sports video that an interesting (or important) event (such as goal or foul) in sports video has a continuous replay shot surrounded by gradual shot change effect like wipe. This shot editing rule is used in this paper to analyze the structure of broadcated soccer video and extracts shot involving the important events to build a highlight. It first uses the spatial-temporal image of video to detect wipe transition effects and zoom out/in shot changes. They are used to detect the replay shot. However, using spatial-temporal image alone to detect the wipe transition effect requires too much computational resources and need to change algorithm if the wipe pattern is changed. For solving these problems, a two-pass detection algorithm and a pixel sub-sampling technique are proposed in this paper. Furthermore, to detect the zoom out/in shot change and replay shots more precisely, the green-area-ratio and the motion energy are also computed in the proposed scheme. Finally, highlight shots composed of event and player shot are extracted by using these pre-detected replay shot and zoom out/in shot change point. Proposed algorithm will be useful for web services or broadcasting services requiring abstracted soccer video.

An Abstraction Mechanism of Low-Level Video Features for Explosion Scene Retrievals (폭발장면 자동 검출을 위한 저급 수준 비디오 정보의 추상화 방법)

  • 이상혁;남종호
    • Proceedings of the Korean Information Science Society Conference
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    • 2000.04b
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    • pp.526-528
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    • 2000
  • 디지털 비디오 정보를 효율적으로 관리 검색하기 위한 내용 기반 검색 시스템을 위해서는 내용정보의 추상화가 필수적이다. 지금까지 비디오의 내용정보의 추상화, 특히 의미적 내용 정보의 추출은 사람에 의한 수동적인 방법에 의존한 것이 대부분이었다. 본 논문에서는 MPEGgudtlr의 영화 데이터를 대상으로 폭발 장면 자동 추출을 위한 저급 수준 비디오 내용정보의 추상화 방법을 제안하고, 실제 구현을 통하여 그 유용성을 보인다.

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Scene Change Detection Method using Color Histogram and Feature Detection Algorithm (색상 히스토그램과 특징점 추출 알고리즘을 활용한 장면 전환 검출 방법)

  • Hyunju Oh;Wanjin Ko;Jiyong Park
    • Proceedings of the Korea Information Processing Society Conference
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    • 2023.11a
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    • pp.741-744
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    • 2023
  • 장면 전환 검출에서 단일 특성을 사용하는 경우 발생 가능한 정확도 감소의 문제를 해결하기 위해 색상 히스토그램 분포 차 분석과 특징점 추출 알고리즘을 활용한 방법을 제안한다.

Detection of Video Scene Boundaries based on the Local and Global Context Information (지역 컨텍스트 및 전역 컨텍스트 정보를 이용한 비디오 장면 경계 검출)

  • 강행봉
    • Journal of KIISE:Computing Practices and Letters
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    • v.8 no.6
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    • pp.778-786
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    • 2002
  • Scene boundary detection is important in the understanding of semantic structure from video data. However, it is more difficult than shot change detection because scene boundary detection needs to understand semantics in video data well. In this paper, we propose a new approach to scene segmentation using contextual information in video data. The contextual information is divided into two categories: local and global contextual information. The local contextual information refers to the foreground regions' information, background and shot activity. The global contextual information refers to the video shot's environment or its relationship with other video shots. Coherence, interaction and the tempo of video shots are computed as global contextual information. Using the proposed contextual information, we detect scene boundaries. Our proposed approach consists of three consecutive steps: linking, verification, and adjusting. We experimented the proposed approach using TV dramas and movies. The detection accuracy of correct scene boundaries is over than 80%.

Effective Scene Change Detection Method for MuIUmedia Bata as Video Images using Mean Squared Error (평균오차를 이용한 멀티미디어 동영상 데이터를 위한 효율적인 장면전환 검출)

  • Jung, Chang-Ryul;Koh, Jin-Gwang;Lee, Joon
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.6 no.6
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    • pp.951-957
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    • 2002
  • When retrieving voluminous capacity of video image data, it is necessary to provide synopsized frame lists of video image data for indexing and replaying at the exact point where the user want to retrieve. We apply Mean Squared Error method to extract certain pixel value from diagonal direction of a frame. The RGB value of a pixel extracted from each frame is saved in a matrix form, and this frame is retrievedas a scene change point if the compared value of two points met the certain condition. Also implement the algorithm and provide a way to seize entire structure of video image and the point of scene changes. finally, we analyze and prove that our method has better performance compared with the others.

Automatic Detection of Highlights in Soccer videos based on analysis of scene structure (축구 동영상에서의 장면 구조 분석에 기반한 자동적인 하이라이트 장면 검출)

  • Park, Ki-Tae;Moon, Young-Shik
    • The KIPS Transactions:PartB
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    • v.14B no.1 s.111
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    • pp.1-4
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    • 2007
  • In this paper, we propose an efficient scheme for automatically detecting highlight scenes in soccer videos. Highlights are defined as shooting scenes and goal scenes. Through the analysis of soccer videos, we notice that most of highlight scenes are shown around the goal post area. It is also noticed that the TV camera zooms in a setter player or spectators after the highlight stones. Detection of highlight scenes for soccer videos consists of three steps. The first step is the extraction of the playing field using a statistical threshold. The second step is the detection of goal posts. In the final step, we detect a zooming of a soccer player or spectators by using connected component labeling of non-playing field. In order to evaluate the performance of our method, the precision and the recall are computed. Experimental results have shown the effectiveness of the proposed method, with 95.2% precision and 85.4% recall.

Abstraction Mechanism of Low-Level Video Features for Automatic Retrieval of Explosion Scenes (폭발장면 자동 검출을 위한 저급 수준 비디오 특징의 추상화)

  • Lee, Sang-Hyeok;Nang, Jong-Ho
    • Journal of KIISE:Software and Applications
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    • v.28 no.5
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    • pp.389-401
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    • 2001
  • This paper proposes an abstraction mechanism of the low-level digital video features for the automatic retrievals of the explosion scenes from the digital video library. In the proposed abstraction mechanism, the regional dominant colors of the key frame and the motion energy of the shot are defined as the primary abstractions of the shot for the explosion scene retrievals. It is because an explosion shot usually consists of the frames with a yellow-tone pixel and the objects in the shot are moved rapidly. The regional dominant colors of shot are selected by dividing its key frame image into several regions and extracting their regional dominant colors, and the motion energy of the shot is defined as the edge image differences between key frame and its neighboring frame. The edge image of the key frame makes the retrieval of the explosion scene more precisely, because the flames usually veils all other objects in the shot so that the edge image of the key frame comes to be simple enough in the explosion shot. The proposed automatic retrieval algorithm declares an explosion scene if it has a shot with a yellow regional dominant color and its motion energy is several times higher than the average motion energy of the shots in that scene. The edge image of the key frame is also used to filter out the false detection. Upon the extensive exporimental results, we could argue that the recall and precision of the proposed abstraction and detecting algorithm are about 0.8, and also found that they are not sensitive to the thresholds. This abstraction mechanism could be used to summarize the long action videos, and extract a high level semantic information from digital video archive.

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Extraction of Smoking-in Elevator (흡연의 추출-엘리베이터 내에서)

  • Shin, Seong-Yoon;Pyo, Sung-Bae;Rhee, Yang-Won
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2013.01a
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    • pp.75-77
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    • 2013
  • 엘리베이터 내에서는 흡연이 금지되어 있으며 엘리베이터 내에서 흡연을 하는 것은 매우 잘못된 일이다. 흡연은 우리 청소년과 여성들에게 매우 좋지 않다. 본 논문에서는 엘리베이터 내에서 흡연을 하는 사람을 추출하여 포렌식 증거 자료로 법원에 제출하기 위해서이다. 추출을 위하여 엘리베이터에 탄 사람의 얼굴 주위를 부분적으로 장면 전환 검출하여 추출한다. 얼굴 주변에 흰색 막대를 검출하는 방법으로 흡연 여부를 결정한다. 연기를 내뿜는 것에 관한 연구는 나중에 할 것이다. 장면 전환 검출은 컬러히스토그램으로 추출하도록 한다.

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